US11125832B2 - Multi-phase simulation environment - Google Patents

Multi-phase simulation environment Download PDF

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US11125832B2
US11125832B2 US16/714,541 US201916714541A US11125832B2 US 11125832 B2 US11125832 B2 US 11125832B2 US 201916714541 A US201916714541 A US 201916714541A US 11125832 B2 US11125832 B2 US 11125832B2
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waveform
event
master
under test
electrical characteristics
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Steven Charles PETIT
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Sentient Technology Holdings LLC
Sentient Energy Holdings LLC
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F30/00Computer-aided design [CAD]
    • G06F30/30Circuit design
    • G06F30/36Circuit design at the analogue level
    • G06F30/367Design verification, e.g. using simulation, simulation program with integrated circuit emphasis [SPICE], direct methods or relaxation methods
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/40Testing power supplies
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R19/00Arrangements for measuring currents or voltages or for indicating presence or sign thereof
    • G01R19/25Arrangements for measuring currents or voltages or for indicating presence or sign thereof using digital measurement techniques
    • G01R19/2513Arrangements for monitoring electric power systems, e.g. power lines or loads; Logging
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2113/00Details relating to the application field
    • G06F2113/04Power grid distribution networks
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y04INFORMATION OR COMMUNICATION TECHNOLOGIES HAVING AN IMPACT ON OTHER TECHNOLOGY AREAS
    • Y04SSYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
    • Y04S40/00Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them
    • Y04S40/20Information technology specific aspects, e.g. CAD, simulation, modelling, system security

Definitions

  • the present application relates generally to distribution line monitoring, sensor monitoring, and sensing and identifying electrical characteristics of a power distribution line. More specifically, the present disclosure relates to testing devices for simulating electrical characteristics of an electrical grid to test line sensing devices for quality control or new features.
  • electrical power utility companies employ a power grid distribution network that includes distribution-line-conductors (which are often referred to as power lines).
  • distribution-line-conductors which are often referred to as power lines.
  • difficulties or faults within the distribution network are identified only after occurrences of “events.” These events may merely result in a temporary loss of power for a limited number of customers, but more significant problems may occur.
  • Reactive components are particularly common.
  • a reactive component is a device or system that is activated or deactivated by a fault event or its consequences. For example, a circuit breaker will open a transmission line as a response to excessive current, thereby protecting power distribution equipment. More sophisticated systems are also available.
  • Line monitoring devices typically take the form of a sensor monitoring the electric current and electric field (“E-field”) or voltage of a conductor in the utility network, and provide output data consisting of measurements and analysis of the conductor via wireless network (mesh WLAN, cellular WWAN, or “WAN”).
  • E-field electric current and electric field
  • WAN wireless network
  • the use of GPS by these sensors provides a precise timing reference which enables coordination of measurement activity across a widely deployed population of sensors which otherwise share no common direct connection.
  • the output data from each sensor is typically returned to a “back-end” management system, which stores the data for further analysis, management display, etc.
  • FIG. 1 is a schematic diagram of a MPSE system.
  • FIG. 2 is a schematic diagram illustrating waveform generation in the MPSE system described herein.
  • FIGS. 3A-3D are diagrams illustrating waveform generation with a master-slave waveform generator approach.
  • FIGS. 4A-4B are diagrams showing a way of coordinating the waveforms in the system.
  • FIG. 5 is a flowchart describing a method for simulating and measuring electrical characteristics of a power grid network.
  • a method for simulating and measuring electrical characteristics of a power grid network comprising the steps of generating a sync waveform from a master waveform generator to one or more slave waveform generators to provide a phase locked loop reference between the master waveform generator and the one or more slave waveform generators, generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a first event waveform of a waveform playlist, delivering the first event waveform of the waveform playlist from the master waveform generator and the one or more slave waveform generators to one or more devices under test, measuring electrical characteristics of the first event waveform with the one or more devices under test, generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a subsequent event waveform of the waveform playlist, delivering the subsequent event waveform of the waveform playlist from the master waveform generator and the one or more slave waveform generators to the one or more devices under test, and measuring electrical characteristics of the subsequent event waveform with the one or more devices under test
  • the method further comprises measuring electrical characteristics of the first event waveform and the subsequent event waveform with an oscilloscope.
  • the method can further comprise comparing the electrical characteristics measured by the oscilloscope to the electrical characteristics measured by the one or more devices under test.
  • the first event waveform comprises a simulated current signal and a simulated voltage signal.
  • the measured electrical characteristics of the first event waveform comprise a simulated conductor current and an electric field signal.
  • the sync waveform comprises a square wave shared among the master and slave waveform generators.
  • the one or more devices under test comprise one or more power line monitoring sensors.
  • the first event waveform comprises a background waveform that represents typical waveform characteristics of a normally operating power grid.
  • the subsequent event waveform comprises an event waveform that represents a fault, disturbance, or power outage of a power grid.
  • the first event waveform is delivered from the master waveform generator and the one or more slave waveform generators in the phase locked loop reference.
  • a power grid simulation system comprising a first device under test configured to measure electrical characteristics on a first conductor, a second device under test configured to measure electrical characteristics on a second conductor, a master waveform generator electrically coupled to the first device under test, the master waveform generator being configured to apply a first simulated current and a first simulated voltage on the first conductor to the first device under test, a slave waveform generator electrically coupled to the second device under test, the master waveform generator being configured to apply a second simulated current and a second simulated voltage on the second conductor to the second device under test, wherein the master waveform generator is configured to generate a trigger signal from to the slave waveform generator to initiate a first event waveform and a subsequent event waveform of a waveform playlist, and wherein the master waveform generator and the slave waveform generator are configured to deliver the first event waveform and the subsequent event waveform of the waveform playlist to the first and second devices under test in a phase locked loop.
  • the system can further include an oscilloscope configured to measure electrical characteristics of the first event waveform and the subsequent event waveform.
  • system further comprises a central processing unit configured to compare the electrical characteristics measured by the oscilloscope to the electrical characteristics measured by the first and second devices under test.
  • the first event waveform comprises a simulated current signal and a simulated voltage signal.
  • the measured electrical characteristics of the first event waveform and the subsequent event waveform comprise a simulated conductor current and an electric field signal.
  • the master waveform generator is further configured to provide a sync waveform to keep the master waveform generator and the slave waveform generator in the phase locked loop.
  • the first and second devices under test comprise power line monitoring sensors.
  • the first event waveform comprises a background waveform that represents typical waveform characteristics of a normally operating power grid.
  • the subsequent event waveform comprises an event waveform that represents a fault, disturbance, or power outage of a power grid.
  • the present disclosure provides line monitoring sensors and testing systems that simulate the conductor current and voltage or electric field of multiple phases of an electrical power distribution network, provide independent control of wireless network connectivity for each sensing or measuring device, provide independent control of GPS RF to each device, and interface to a back-end analytics and management system.
  • the present disclosure provides systems and methods which simulate the conductor current and voltage or electric field of multiple phases of an electrical power distribution network to one or more sensing or measuring devices for testing and quality control.
  • a multi-phase simulation environment (“MPSE”) 100 which provides a simulated testing environment for one or more line monitoring devices or sensors (the devices-under-test, or “DUTs”) 102 a , 102 b , and 102 c , each having their own power supply.
  • MPSE multi-phase simulation environment
  • DUTs line monitoring devices or sensors
  • FIG. 1 it should be understood that the number of simulated conductors and devices-under-test may be scaled up arbitrarily.
  • the MPSE as disclosed herein includes waveform generator(s) 104 a , 104 b , and 104 c electrically coupled to each DUT to provide a simulated current and simulated voltage to each corresponding DUT.
  • the waveform generators further provide trigger and sync waveforms between the waveform generators which enables independent 360° control of the phase angle of each simulated conductor within a single common angular frame of reference, so that the real-time phase relationships between all simulated conductors may be controlled and maintained. This enables running test scenarios which would not be possible if the phase relationships between multiple individual conductors could not be controlled and maintained.
  • the sync waveform can be a 10 mhz square wave that is shared among the waveform generators.
  • the sync waveform provides a common phase locked loop reference.
  • a MPSE control unit 108 can be configured to setup and control the operation of the MPSE itself.
  • the MPSE provided herein also enables independent control of all other parameters of each simulated utility conductor, while maintaining a coordinated and coherent frame of reference over the simulated network. Furthermore, the individual control over each parameter for each simulated conductor translates to the ability to perform testing and analysis over the full range of possible scenarios, as opposed to existing test equipment which are typically limited to prescribed or standardized fault scenarios, phase values, current and voltage ranges, etc. This makes the MPSE particularly valuable in developing novel measurement and analytic techniques both at the level of the individual sensor, including hardware as well as embedded software, and in the realm of the back-end analytics and management system, in particular where these techniques rely on some form of coordination across the sensor population.
  • the MPSE provides functionality which may not be possible with other test equipment, including off-the-shelf purpose-designed tools. In cases where there is functional overlap with existing tools, the combined cost of MPSE components may be significantly lower. In particular, the ability to simulate a scalable number of grid conductors within a coordinated frame of reference, including configuration and control over both phase relationships and the simulation and timing of events such as faults, load changes, disturbances, or other events, is unique.
  • the MPSE can include a WAN control that controls the availability of WAN RF to each DUT.
  • the WAN control may include programmatic control of RF switches or programmable attenuators.
  • the WAN control may also control the network interface status of the MSUT and/or other network components.
  • the MPSE of the present disclosure can further include a GPS distribution interface to coordinate the DUTs.
  • the GPS signal can be received by an active antenna, which may be some distance away in order to obtain clear view of the sky.
  • the GPS signal can then distributed to each DUT individually via power dividers (and amplifiers if necessary).
  • the GPS signal path may include RF switches or manual or programmable attenuators to enable reducing or removing GPS signal as part of test scenario.
  • the DUTs, or monitoring devices are configured to be mounted to power lines or primary conductors of a power distribution network, such as a three phase AC network.
  • the monitoring device can be configured to monitor, among other things, current flow in the simulated lines and voltage/current waveforms, conductor temperatures, ambient temperatures, vibration, and monitoring device system diagnostics.
  • the monitoring device can further include wireless and or wired transmission (WLAN) and receiving capabilities for communication with a central server and for communications between other monitoring devices.
  • the monitoring device can be configured to also measure the electric field surrounding the simulated lines, to record and analyze event/fault signatures, and to classify event waveforms. Current, voltage, and electric field waveform signatures can be monitored and catalogued by the monitoring device to build a comprehensive database of events, causes, and remedial actions.
  • the DUTs further include a plurality of power supplies (e.g., one power supply for each DUT/waveform generator).
  • Programmable power supplies enable scenarios which include reducing or shutting off power to the DUT (which enables testing of DUT power management functions).
  • Power may be supplied directly, or as an input to DUT power-harvesting circuitry. This may include control of power to RF components or switches for WAN/GPS.
  • the DUTs of the MPSE may be electrically isolated from the rest of the system.
  • each DUT may be housed inside a RF-isolating metal enclosure.
  • the enclosures can be lined with RF-absorbing material to reduce reflection.
  • the enclosures may further provide individual control of DUT WAN and GPS access, and prevent unwanted rebroadcast of GPS signals.
  • Signal pass-throughs can also be provided for conductor current and E-field or voltage signals, WAN and GPS RF, USB, RS-232, and DC power.
  • Existing test tools may offer the ability to simulate some of these parameters, but the control range may be limited, and the total number of simulated conductors is typically limited to between one and three conductors for phase-related simulations including both current and voltage. More than one of an existing tool may be used for larger numbers of simulated conductors, but scaling in this manner would require a very high expenditure. Also, control of the phase relationship and/or sub-millisecond event timing between each of these devices may still not be possible.
  • the MPSE can provide testing of features including automatic phase identification, fault localization (via “last sensor” determination), disturbance detection and classification, and phase imbalance. While some aspects of these features and relevant system components can be tested or exercised individually, the end-to-end testing of these features requires the full scalability and control offered by the MPSE.
  • the MPSE controller can be controlled via the MPSE controller 108 to select test criteria and waveform definition via either automated configuration or manual input, coordinate configuration of test equipment and DUT before, during, and after test, coordinate collection of data for post-test analysis, and include interface to test equipment, DUTs and MSUT.
  • Waveforms for the DUTs can be defined programmatically from stored parameters and generated by the waveform generators.
  • a waveform sequence can be defined for each simulated conductor comprising of one or more pairs of conductor current, E-field, or voltage waveforms. Waveforms may directly represent the simulated conductor, or may be calculated to simulate, for example, Rogowski coil output corresponding to conductor current.
  • the number of waveforms and the length of each are typically the same for all simulated conductors, while the phase angle, magnitude, harmonic content, or other parameters can be varied according to the test requirements.
  • These waveforms can be generated as data files and are then scripted into a “playlist” of waveform events to be triggered in turn.
  • the waveform generators can be programmatically configured at runtime with the waveform and playlist files as well as other hardware parameters.
  • FIG. 2 is a schematic diagram illustrating waveform generation in the MPSE system described herein.
  • the system components involved in waveform generation include, but are not limited to, one or more DUTs 202 , one or more waveform generators 204 , and a hardware interface 210 between the waveform generator(s) and the input of each DUT that can include, among other components, current/voltage amplifiers, baluns, and/or differential amplifiers.
  • the hardware interface enables each waveform generator to drive a wide variety of hardware inputs not directly compatible with the generator (high current, high voltage, etc.).
  • DUT interface Several different forms of DUT interface are available, including a current amplifier to drive a Rogowski coil or other current sensing device, a high-voltage amplifier to drive a capacitive E-field sensor input, a balun or other impedance transformer to simulate potential transformer output, or a direct test input requiring simulated Rogowski coil output or other “converted” current or voltage signal analog.
  • An oscilloscope 212 can be connected to the various outputs of the waveform generator to accurately measure the signals produced.
  • the oscilloscope can be connected to each waveform generator output to provide a way of recording the simulated conductor current and E-field signals. Alternately, the oscilloscope may be connected at the input to the DUT (downstream of the hardware interface 210 ).
  • the waveform generators are interconnected in a master-and-slave configuration, with a single master waveform generator 204 and one or more slave waveform generators (not shown in FIG. 2 ).
  • the waveform generators are configured to share: 1) a high-frequency synchronization signal, which enables maintaining phase lock between the waveform generators for extended periods, 2) a digital trigger signal, initiating each event in the “playlist” of waveforms. This can be provided to the master in the form of a SCPI command and is subsequently distributed to the slaves as a TTL pulse, resulting in near simultaneous waveform event transitions between waveform generators.
  • Generation of the master trigger signal may include the GPS-derived pulse-per-second signal (or “PPS”) as a timing reference for control of the phase relationship between PPS and the waveform generator output.
  • PPS GPS-derived pulse-per-second signal
  • FIGS. 3A-3D illustrate waveform generation with the master-slave approach described above.
  • waveform data is downloaded to the generators, and waveforms are constructed for each phase so that relationships between phases are built-in to the generators.
  • FIGS. 3A-3C illustrate waveforms for the simulated conductor current of Phase A, Phase B, and Phase C, respectively.
  • FIG. 3D illustrates a schematic diagram of the master-slave waveform generator relationship, represented by master waveform generator 304 a and slave waveform generators 304 b and 304 c .
  • a trigger signal is initiated to the master device 304 a (such as by the MPSE controller described above), which is then passed on to the slave devices 304 b and 304 c with the trigger out connections between waveform generators.
  • This maintains the time alignment of play-listed waveforms.
  • a syncing function enables phase-lock between waveform generators, which provides the ability to maintain phase relationships over long (multi-day) periods if desired.
  • FIG. 4A is a diagram showing an example of coordinating the various phases of the conductor current waveforms in the MPSE system.
  • FIG. 4B is one example of a waveform “playlist” including one or more “background” and “event” waveforms that are triggered by the master waveform generator (via the trigger sync) to sync the waveforms among the various waveform generators.
  • the waveforms are designed to be part of a “playlist” sequence, which can include background and event waveforms.
  • the waveforms represented along timescales 414 and 418 in FIG. 4B represent a “background” waveform, which can, for example, represent a typical waveform that a line monitoring device might measure on a power grid conductor during normal operation.
  • the waveform represented along timescale 416 can represent an “event” waveform, which can, for example, represent a waveform that a line monitoring device might measure when there is a fault, disturbance, or power outage event on a power grid conductor.
  • the playlist sequence may also contain elements of differing lengths.
  • the first background waveform along timescale 414 has a different duration than the event and background waveforms along timescales 416 and 418 .
  • Individual sequence elements must be the same length for all phases (e.g., Phase A, Phase B, and Phase C).
  • Each event can be initiated via a trigger signal from the MPSE controller and/or master waveform generator, and coordination between the waveform generators can be maintained by a combination of a shared trigger signal, an event length, a sample rate, and a phase lock.
  • a typical scenario executed within the MPSE may proceed as follows, and as illustrated in flowchart 500 of FIG. 5 :
  • the test will target the DUTs' ability to provide independent measurement of conductor phase angle to the MSUT under a prescribed set of conditions regarding the conductors and GPS availability. Data will also be collected to evaluate the output of subsequent MSUT analysis.
  • the example test configuration includes three simulated conductors with one DUT assigned to each conductor, with the DUTs connected to the back-end MSUT.
  • all three DUTs will have normal power, WAN, and GPS available through the test.
  • the conductor current and E-field will be maintained at normal levels with no added noise or harmonics.
  • the phase angles of the three simulated conductors can be arranged at intervals of 120° as a normal three-phase triplet. For each simulated conductor, the corresponding conductor current and E-field waveforms can share the same phase angle (zero reactive power).
  • the test begins by establishing configuration values and settings for the necessary components of the system. Relevant data is collected from the DUTs and MSUT. DUT firmware can be uploaded if necessary, and the DUTs are configured to a quiescent state.
  • waveform data can be generated as prescribed for the waveform generators, including generating a waveform playlist with more than one waveform event.
  • a master waveform generator can initialize a sync waveform to one or more slave waveform generators to provide a common phase locked loop reference.
  • the method can further include generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate waveform playlist.
  • the method can include delivering a first event waveform of the waveform playlist from the master and slave waveform generators to one or more devices under test.
  • the first event waveform of the waveform playlist may be a background waveform (e.g., a waveform that represents typical waveform characteristics of a normally operating power grid).
  • the method can include measuring the first event waveform with the one or more devices under test. Measuring can including measuring the electrical characteristics of the first event waveform, including but not limited to measuring current amplitude, phase angle, voltage amplitude, E-field, etc.
  • the method can further include generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a subsequent event waveform from the waveform playlist.
  • the method can include delivering a subsequent event waveform of the waveform playlist from the master and slave waveform generators to one or more devices under test.
  • the subsequent event waveform of the waveform playlist may be an event waveform (e.g., a waveform that represents a fault, disturbance, or power outage of the power grid).
  • the method can include measuring the subsequent event waveform with the one or more devices under test.
  • Measuring can including measuring the electrical characteristics of the first event waveform, including but not limited to measuring current amplitude, phase, voltage amplitude, E-field, etc. Steps 510 - 513 can be repeated as needed to initiate, deliver, and measure all subsequent event waveforms of the waveform playlist.
  • an oscilloscope capture can be performed for comparison and analysis between the waveforms delivered by the waveform generators and the measurements from the DUTs.
  • the MSUT can be configured process this data for analysis, display, and storage. This comparison and/or analysis can be used to identify DUTs that are not operating correctly or are providing measurements outside of an acceptable error threshold.
  • phase measurement function of the DUTs can be disabled, and output data can be collected from the DUTs and MSUT for analysis against test criteria.
  • System components including test equipment, DUTs, and MSUT can be returned to their quiescent or default states.
  • test validity may be analyzed for test validity, qualitative or statistical analysis, and pass/fail criteria.
  • pass/fail criteria A detailed test report and summary can be generated to represent these results.

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Abstract

A Multi-Phase Simulation Environment (“MPSE”) is provided which simulates the conductor current and voltage or electric field of multiple phases of an electrical power distribution network to one or more sensing or measuring devices and includes independent control of wireless network connectivity for each sensing or measuring device, independent control of GPS RF to each device, and interface to a back-end analytics and management system.

Description

CROSS REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Patent Application No. 62/779,305, filed Dec. 13, 2018, titled “Multi-Phase Simulation Environment”, the contents of which are incorporated by reference herein.
INCORPORATION BY REFERENCE
All publications and patent applications mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference.
FIELD
The present application relates generally to distribution line monitoring, sensor monitoring, and sensing and identifying electrical characteristics of a power distribution line. More specifically, the present disclosure relates to testing devices for simulating electrical characteristics of an electrical grid to test line sensing devices for quality control or new features.
BACKGROUND
In providing power to customers, electrical power utility companies employ a power grid distribution network that includes distribution-line-conductors (which are often referred to as power lines). Typically, difficulties or faults within the distribution network are identified only after occurrences of “events.” These events may merely result in a temporary loss of power for a limited number of customers, but more significant problems may occur.
Protection components and systems are known. “Reactive” components are particularly common. A reactive component is a device or system that is activated or deactivated by a fault event or its consequences. For example, a circuit breaker will open a transmission line as a response to excessive current, thereby protecting power distribution equipment. More sophisticated systems are also available.
Clearly, there are benefits to identifying conditions that precede fault events. For example, if it can be determined that a power line from a power transformer is experiencing intermittent fluctuations, scheduling a replacement of the transformer to avoid an outage event would be beneficial to the utility provider and its customers. Thus, “predictive” components and systems are desirable. Monitoring systems that monitor power parameters of equipment and power lines can provide useful information for the prevention and identification of power distribution faults or events.
Line monitoring devices typically take the form of a sensor monitoring the electric current and electric field (“E-field”) or voltage of a conductor in the utility network, and provide output data consisting of measurements and analysis of the conductor via wireless network (mesh WLAN, cellular WWAN, or “WAN”). In addition to providing location data, the use of GPS by these sensors provides a precise timing reference which enables coordination of measurement activity across a widely deployed population of sensors which otherwise share no common direct connection. The output data from each sensor is typically returned to a “back-end” management system, which stores the data for further analysis, management display, etc.
BRIEF DESCRIPTION OF THE DRAWINGS
The novel features of the invention are set forth with particularity in the claims that follow. A better understanding of the features and advantages of the present invention will be obtained by reference to the following detailed description that sets forth illustrative embodiments, in which the principles of the invention are utilized, and the accompanying drawings of which:
FIG. 1 is a schematic diagram of a MPSE system.
FIG. 2 is a schematic diagram illustrating waveform generation in the MPSE system described herein.
FIGS. 3A-3D are diagrams illustrating waveform generation with a master-slave waveform generator approach.
FIGS. 4A-4B are diagrams showing a way of coordinating the waveforms in the system.
FIG. 5 is a flowchart describing a method for simulating and measuring electrical characteristics of a power grid network.
SUMMARY OF THE DISCLOSURE
A method for simulating and measuring electrical characteristics of a power grid network is provided, comprising the steps of generating a sync waveform from a master waveform generator to one or more slave waveform generators to provide a phase locked loop reference between the master waveform generator and the one or more slave waveform generators, generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a first event waveform of a waveform playlist, delivering the first event waveform of the waveform playlist from the master waveform generator and the one or more slave waveform generators to one or more devices under test, measuring electrical characteristics of the first event waveform with the one or more devices under test, generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a subsequent event waveform of the waveform playlist, delivering the subsequent event waveform of the waveform playlist from the master waveform generator and the one or more slave waveform generators to the one or more devices under test, and measuring electrical characteristics of the subsequent event waveform with the one or more devices under test.
In some examples, the method further comprises measuring electrical characteristics of the first event waveform and the subsequent event waveform with an oscilloscope. The method can further comprise comparing the electrical characteristics measured by the oscilloscope to the electrical characteristics measured by the one or more devices under test.
In some embodiments, the first event waveform comprises a simulated current signal and a simulated voltage signal. In one embodiment, the measured electrical characteristics of the first event waveform comprise a simulated conductor current and an electric field signal.
In some embodiments, the sync waveform comprises a square wave shared among the master and slave waveform generators.
In some examples, the one or more devices under test comprise one or more power line monitoring sensors.
In one embodiment, the first event waveform comprises a background waveform that represents typical waveform characteristics of a normally operating power grid. In another embodiment, the subsequent event waveform comprises an event waveform that represents a fault, disturbance, or power outage of a power grid.
In some examples, the first event waveform is delivered from the master waveform generator and the one or more slave waveform generators in the phase locked loop reference.
A power grid simulation system is also provided, comprising a first device under test configured to measure electrical characteristics on a first conductor, a second device under test configured to measure electrical characteristics on a second conductor, a master waveform generator electrically coupled to the first device under test, the master waveform generator being configured to apply a first simulated current and a first simulated voltage on the first conductor to the first device under test, a slave waveform generator electrically coupled to the second device under test, the master waveform generator being configured to apply a second simulated current and a second simulated voltage on the second conductor to the second device under test, wherein the master waveform generator is configured to generate a trigger signal from to the slave waveform generator to initiate a first event waveform and a subsequent event waveform of a waveform playlist, and wherein the master waveform generator and the slave waveform generator are configured to deliver the first event waveform and the subsequent event waveform of the waveform playlist to the first and second devices under test in a phase locked loop.
The system can further include an oscilloscope configured to measure electrical characteristics of the first event waveform and the subsequent event waveform.
In some examples, the system further comprises a central processing unit configured to compare the electrical characteristics measured by the oscilloscope to the electrical characteristics measured by the first and second devices under test.
In one embodiment, the first event waveform comprises a simulated current signal and a simulated voltage signal.
In some examples, the measured electrical characteristics of the first event waveform and the subsequent event waveform comprise a simulated conductor current and an electric field signal.
In one embodiment, the master waveform generator is further configured to provide a sync waveform to keep the master waveform generator and the slave waveform generator in the phase locked loop.
In some embodiments, the first and second devices under test comprise power line monitoring sensors.
In one example, the first event waveform comprises a background waveform that represents typical waveform characteristics of a normally operating power grid.
In another embodiment, the subsequent event waveform comprises an event waveform that represents a fault, disturbance, or power outage of a power grid.
DETAILED DESCRIPTION
The present disclosure provides line monitoring sensors and testing systems that simulate the conductor current and voltage or electric field of multiple phases of an electrical power distribution network, provide independent control of wireless network connectivity for each sensing or measuring device, provide independent control of GPS RF to each device, and interface to a back-end analytics and management system. The present disclosure provides systems and methods which simulate the conductor current and voltage or electric field of multiple phases of an electrical power distribution network to one or more sensing or measuring devices for testing and quality control.
Described herein, and shown in FIG. 1, is a multi-phase simulation environment (“MPSE”) 100 which provides a simulated testing environment for one or more line monitoring devices or sensors (the devices-under-test, or “DUTs”) 102 a, 102 b, and 102 c, each having their own power supply. Although three DUTs on three simulated conductors are shown in FIG. 1, it should be understood that the number of simulated conductors and devices-under-test may be scaled up arbitrarily.
The MPSE as disclosed herein includes waveform generator(s) 104 a, 104 b, and 104 c electrically coupled to each DUT to provide a simulated current and simulated voltage to each corresponding DUT. The waveform generators further provide trigger and sync waveforms between the waveform generators which enables independent 360° control of the phase angle of each simulated conductor within a single common angular frame of reference, so that the real-time phase relationships between all simulated conductors may be controlled and maintained. This enables running test scenarios which would not be possible if the phase relationships between multiple individual conductors could not be controlled and maintained. In one example, the sync waveform can be a 10 mhz square wave that is shared among the waveform generators. The sync waveform provides a common phase locked loop reference.
The present disclosure provides systems and methods by which an array of line monitoring devices or sensors (the devices under test, or DUT) and the back-end analytics and management system (the management-system-under-test, or “MSUT”) 106 may be exercised in this context. A MPSE control unit 108 can be configured to setup and control the operation of the MPSE itself.
The MPSE provided herein also enables independent control of all other parameters of each simulated utility conductor, while maintaining a coordinated and coherent frame of reference over the simulated network. Furthermore, the individual control over each parameter for each simulated conductor translates to the ability to perform testing and analysis over the full range of possible scenarios, as opposed to existing test equipment which are typically limited to prescribed or standardized fault scenarios, phase values, current and voltage ranges, etc. This makes the MPSE particularly valuable in developing novel measurement and analytic techniques both at the level of the individual sensor, including hardware as well as embedded software, and in the realm of the back-end analytics and management system, in particular where these techniques rely on some form of coordination across the sensor population.
The MPSE provides functionality which may not be possible with other test equipment, including off-the-shelf purpose-designed tools. In cases where there is functional overlap with existing tools, the combined cost of MPSE components may be significantly lower. In particular, the ability to simulate a scalable number of grid conductors within a coordinated frame of reference, including configuration and control over both phase relationships and the simulation and timing of events such as faults, load changes, disturbances, or other events, is unique.
Additionally, the MPSE can include a WAN control that controls the availability of WAN RF to each DUT. The WAN control may include programmatic control of RF switches or programmable attenuators. The WAN control may also control the network interface status of the MSUT and/or other network components.
The MPSE of the present disclosure can further include a GPS distribution interface to coordinate the DUTs. The GPS signal can be received by an active antenna, which may be some distance away in order to obtain clear view of the sky. The GPS signal can then distributed to each DUT individually via power dividers (and amplifiers if necessary). The GPS signal path may include RF switches or manual or programmable attenuators to enable reducing or removing GPS signal as part of test scenario.
The DUTs, or monitoring devices, are configured to be mounted to power lines or primary conductors of a power distribution network, such as a three phase AC network. The monitoring device can be configured to monitor, among other things, current flow in the simulated lines and voltage/current waveforms, conductor temperatures, ambient temperatures, vibration, and monitoring device system diagnostics. The monitoring device can further include wireless and or wired transmission (WLAN) and receiving capabilities for communication with a central server and for communications between other monitoring devices. The monitoring device can be configured to also measure the electric field surrounding the simulated lines, to record and analyze event/fault signatures, and to classify event waveforms. Current, voltage, and electric field waveform signatures can be monitored and catalogued by the monitoring device to build a comprehensive database of events, causes, and remedial actions.
The DUTs further include a plurality of power supplies (e.g., one power supply for each DUT/waveform generator). Programmable power supplies enable scenarios which include reducing or shutting off power to the DUT (which enables testing of DUT power management functions). Power may be supplied directly, or as an input to DUT power-harvesting circuitry. This may include control of power to RF components or switches for WAN/GPS.
The DUTs of the MPSE may be electrically isolated from the rest of the system. For example, each DUT may be housed inside a RF-isolating metal enclosure. The enclosures can be lined with RF-absorbing material to reduce reflection. The enclosures may further provide individual control of DUT WAN and GPS access, and prevent unwanted rebroadcast of GPS signals. Signal pass-throughs can also be provided for conductor current and E-field or voltage signals, WAN and GPS RF, USB, RS-232, and DC power.
Existing test tools may offer the ability to simulate some of these parameters, but the control range may be limited, and the total number of simulated conductors is typically limited to between one and three conductors for phase-related simulations including both current and voltage. More than one of an existing tool may be used for larger numbers of simulated conductors, but scaling in this manner would require a very high expenditure. Also, control of the phase relationship and/or sub-millisecond event timing between each of these devices may still not be possible.
The MPSE can provide testing of features including automatic phase identification, fault localization (via “last sensor” determination), disturbance detection and classification, and phase imbalance. While some aspects of these features and relevant system components can be tested or exercised individually, the end-to-end testing of these features requires the full scalability and control offered by the MPSE.
Referring to FIG. 1, the MPSE controller can be controlled via the MPSE controller 108 to select test criteria and waveform definition via either automated configuration or manual input, coordinate configuration of test equipment and DUT before, during, and after test, coordinate collection of data for post-test analysis, and include interface to test equipment, DUTs and MSUT.
Waveforms for the DUTs can be defined programmatically from stored parameters and generated by the waveform generators. A waveform sequence can be defined for each simulated conductor comprising of one or more pairs of conductor current, E-field, or voltage waveforms. Waveforms may directly represent the simulated conductor, or may be calculated to simulate, for example, Rogowski coil output corresponding to conductor current. The number of waveforms and the length of each are typically the same for all simulated conductors, while the phase angle, magnitude, harmonic content, or other parameters can be varied according to the test requirements. These waveforms can be generated as data files and are then scripted into a “playlist” of waveform events to be triggered in turn. The waveform generators can be programmatically configured at runtime with the waveform and playlist files as well as other hardware parameters.
FIG. 2 is a schematic diagram illustrating waveform generation in the MPSE system described herein. As shown, the system components involved in waveform generation include, but are not limited to, one or more DUTs 202, one or more waveform generators 204, and a hardware interface 210 between the waveform generator(s) and the input of each DUT that can include, among other components, current/voltage amplifiers, baluns, and/or differential amplifiers. The hardware interface enables each waveform generator to drive a wide variety of hardware inputs not directly compatible with the generator (high current, high voltage, etc.). Several different forms of DUT interface are available, including a current amplifier to drive a Rogowski coil or other current sensing device, a high-voltage amplifier to drive a capacitive E-field sensor input, a balun or other impedance transformer to simulate potential transformer output, or a direct test input requiring simulated Rogowski coil output or other “converted” current or voltage signal analog.
An oscilloscope 212 can be connected to the various outputs of the waveform generator to accurately measure the signals produced. The oscilloscope can be connected to each waveform generator output to provide a way of recording the simulated conductor current and E-field signals. Alternately, the oscilloscope may be connected at the input to the DUT (downstream of the hardware interface 210).
In some embodiments, the waveform generators are interconnected in a master-and-slave configuration, with a single master waveform generator 204 and one or more slave waveform generators (not shown in FIG. 2). The waveform generators are configured to share: 1) a high-frequency synchronization signal, which enables maintaining phase lock between the waveform generators for extended periods, 2) a digital trigger signal, initiating each event in the “playlist” of waveforms. This can be provided to the master in the form of a SCPI command and is subsequently distributed to the slaves as a TTL pulse, resulting in near simultaneous waveform event transitions between waveform generators. Generation of the master trigger signal may include the GPS-derived pulse-per-second signal (or “PPS”) as a timing reference for control of the phase relationship between PPS and the waveform generator output.
FIGS. 3A-3D illustrate waveform generation with the master-slave approach described above. Generally, waveform data is downloaded to the generators, and waveforms are constructed for each phase so that relationships between phases are built-in to the generators. FIGS. 3A-3C illustrate waveforms for the simulated conductor current of Phase A, Phase B, and Phase C, respectively. FIG. 3D illustrates a schematic diagram of the master-slave waveform generator relationship, represented by master waveform generator 304 a and slave waveform generators 304 b and 304 c. In one example, a trigger signal is initiated to the master device 304 a (such as by the MPSE controller described above), which is then passed on to the slave devices 304 b and 304 c with the trigger out connections between waveform generators. This maintains the time alignment of play-listed waveforms. A syncing function enables phase-lock between waveform generators, which provides the ability to maintain phase relationships over long (multi-day) periods if desired.
FIG. 4A is a diagram showing an example of coordinating the various phases of the conductor current waveforms in the MPSE system. FIG. 4B is one example of a waveform “playlist” including one or more “background” and “event” waveforms that are triggered by the master waveform generator (via the trigger sync) to sync the waveforms among the various waveform generators. As shown in FIG. 4B, the waveforms are designed to be part of a “playlist” sequence, which can include background and event waveforms. The waveforms represented along timescales 414 and 418 in FIG. 4B represent a “background” waveform, which can, for example, represent a typical waveform that a line monitoring device might measure on a power grid conductor during normal operation. The waveform represented along timescale 416, however, can represent an “event” waveform, which can, for example, represent a waveform that a line monitoring device might measure when there is a fault, disturbance, or power outage event on a power grid conductor. The playlist sequence may also contain elements of differing lengths. As shown, the first background waveform along timescale 414 has a different duration than the event and background waveforms along timescales 416 and 418. Individual sequence elements must be the same length for all phases (e.g., Phase A, Phase B, and Phase C). Each event can be initiated via a trigger signal from the MPSE controller and/or master waveform generator, and coordination between the waveform generators can be maintained by a combination of a shared trigger signal, an event length, a sample rate, and a phase lock.
Example Scenario
A typical scenario executed within the MPSE may proceed as follows, and as illustrated in flowchart 500 of FIG. 5: In this example, the test will target the DUTs' ability to provide independent measurement of conductor phase angle to the MSUT under a prescribed set of conditions regarding the conductors and GPS availability. Data will also be collected to evaluate the output of subsequent MSUT analysis.
The example test configuration includes three simulated conductors with one DUT assigned to each conductor, with the DUTs connected to the back-end MSUT. In this scenario, all three DUTs will have normal power, WAN, and GPS available through the test. The conductor current and E-field will be maintained at normal levels with no added noise or harmonics. The phase angles of the three simulated conductors can be arranged at intervals of 120° as a normal three-phase triplet. For each simulated conductor, the corresponding conductor current and E-field waveforms can share the same phase angle (zero reactive power).
The test begins by establishing configuration values and settings for the necessary components of the system. Relevant data is collected from the DUTs and MSUT. DUT firmware can be uploaded if necessary, and the DUTs are configured to a quiescent state. At optional step 502 of the flowchart 500, waveform data can be generated as prescribed for the waveform generators, including generating a waveform playlist with more than one waveform event.
Next, the waveform generators apply the prescribed waveform playlist to provide a simulated current and a simulated voltage to the DUTs. At step 504, a master waveform generator can initialize a sync waveform to one or more slave waveform generators to provide a common phase locked loop reference.
Next, at step 506, the method can further include generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate waveform playlist. At step 508, the method can include delivering a first event waveform of the waveform playlist from the master and slave waveform generators to one or more devices under test. For example, the first event waveform of the waveform playlist may be a background waveform (e.g., a waveform that represents typical waveform characteristics of a normally operating power grid). At step 509, the method can include measuring the first event waveform with the one or more devices under test. Measuring can including measuring the electrical characteristics of the first event waveform, including but not limited to measuring current amplitude, phase angle, voltage amplitude, E-field, etc.
Next, at step 510, the method can further include generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a subsequent event waveform from the waveform playlist. At step 512, the method can include delivering a subsequent event waveform of the waveform playlist from the master and slave waveform generators to one or more devices under test. For example, the subsequent event waveform of the waveform playlist may be an event waveform (e.g., a waveform that represents a fault, disturbance, or power outage of the power grid). At step 513, the method can include measuring the subsequent event waveform with the one or more devices under test. Measuring can including measuring the electrical characteristics of the first event waveform, including but not limited to measuring current amplitude, phase, voltage amplitude, E-field, etc. Steps 510-513 can be repeated as needed to initiate, deliver, and measure all subsequent event waveforms of the waveform playlist.
During all of the method steps described above, an oscilloscope capture can be performed for comparison and analysis between the waveforms delivered by the waveform generators and the measurements from the DUTs. The MSUT can be configured process this data for analysis, display, and storage. This comparison and/or analysis can be used to identify DUTs that are not operating correctly or are providing measurements outside of an acceptable error threshold.
In some examples, the phase measurement function of the DUTs can be disabled, and output data can be collected from the DUTs and MSUT for analysis against test criteria. System components including test equipment, DUTs, and MSUT can be returned to their quiescent or default states.
The data collected in the method described above may be analyzed for test validity, qualitative or statistical analysis, and pass/fail criteria. A detailed test report and summary can be generated to represent these results.
As for additional details pertinent to the present invention, materials and manufacturing techniques may be employed as within the level of those with skill in the relevant art. The same may hold true with respect to method-based aspects of the invention in terms of additional acts commonly or logically employed. Also, it is contemplated that any optional feature of the inventive variations described may be set forth and claimed independently, or in combination with any one or more of the features described herein. Likewise, reference to a singular item, includes the possibility that there are plural of the same items present. More specifically, as used herein and in the appended claims, the singular forms “a,” “and,” “said,” and “the” include plural referents unless the context clearly dictates otherwise. It is further noted that the claims may be drafted to exclude any optional element. As such, this statement is intended to serve as antecedent basis for use of such exclusive terminology as “solely,” “only” and the like in connection with the recitation of claim elements, or use of a “negative” limitation. Unless defined otherwise herein, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. The breadth of the present invention is not to be limited by the subject specification, but rather only by the plain meaning of the claim terms employed.

Claims (19)

What is claimed is:
1. A method for simulating and measuring electrical characteristics of a power grid network, comprising the steps of:
generating a sync waveform from a master waveform generator to one or more slave waveform generators to provide a phase locked loop reference between the master waveform generator and the one or more slave waveform generators;
generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a first event waveform of a waveform playlist;
delivering the first event waveform of the waveform playlist from the master waveform generator and the one or more slave waveform generators to one or more devices under test;
measuring electrical characteristics of the first event waveform with the one or more devices under test;
generating a trigger signal from the master waveform generator to the one or more slave waveform generators to initiate a subsequent event waveform of the waveform playlist;
delivering the subsequent event waveform of the waveform playlist from the master waveform generator and the one or more slave waveform generators to the one or more devices under test; and
measuring electrical characteristics of the subsequent event waveform with the one or more devices under test.
2. The method of claim 1, further comprising measuring electrical characteristics of the first event waveform and the subsequent event waveform with an oscilloscope.
3. The method of claim 2, further comprising comparing the electrical characteristics measured by the oscilloscope to the electrical characteristics measured by the one or more devices under test.
4. The method of claim 1, wherein the first event waveform comprises a simulated current signal and a simulated voltage signal.
5. The method of claim 1, wherein the measured electrical characteristics of the first event waveform comprise a simulated conductor current and an electric field signal.
6. The method of claim 1, wherein the sync waveform comprises a square wave shared among the master and slave waveform generators.
7. The method of claim 1, wherein the one or more devices under test comprise one or more power line monitoring sensors.
8. The method of claim 1, wherein the first event waveform comprises a background waveform that represents typical waveform characteristics of a normally operating power grid.
9. The method of claim 1, wherein the subsequent event waveform comprises an event waveform that represents a fault, disturbance, or power outage of a power grid.
10. The method of claim 1, wherein the first event waveform is delivered from the master waveform generator and the one or more slave waveform generators in the phase locked loop reference.
11. A power grid simulation system, comprising:
a first device under test configured to measure electrical characteristics on a first conductor;
a second device under test configured to measure electrical characteristics on a second conductor;
a master waveform generator electrically coupled to the first device under test, the master waveform generator being configured to apply a first simulated current and a first simulated voltage on the first conductor to the first device under test;
a slave waveform generator electrically coupled to the second device under test, the master waveform generator being configured to apply a second simulated current and a second simulated voltage on the second conductor to the second device under test;
wherein the master waveform generator is configured to generate a trigger signal from to the slave waveform generator to initiate a first event waveform and a subsequent event waveform of a waveform playlist; and
wherein the master waveform generator and the slave waveform generator are configured to deliver the first event waveform and the subsequent event waveform of the waveform playlist to the first and second devices under test in a phase locked loop.
12. The system of claim 11, further comprising an oscilloscope configured to measure electrical characteristics of the first event waveform and the subsequent event waveform.
13. The system of claim 12, further comprising a central processing unit configured to compare the electrical characteristics measured by the oscilloscope to the electrical characteristics measured by the first and second devices under test.
14. The system of claim 11, wherein the first event waveform comprises a simulated current signal and a simulated voltage signal.
15. The system of claim 11, wherein the measured electrical characteristics of the first event waveform and the subsequent event waveform comprise a simulated conductor current and an electric field signal.
16. The system of claim 11, wherein the master waveform generator is further configured to provide a sync waveform to keep the master waveform generator and the slave waveform generator in the phase locked loop.
17. The system of claim 11, wherein first and second devices under test comprise power line monitoring sensors.
18. The system of claim 11, wherein the first event waveform comprises a background waveform that represents typical waveform characteristics of a normally operating power grid.
19. The system of claim 11, wherein the subsequent event waveform comprises an event waveform that represents a fault, disturbance, or power outage of a power grid.
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Citations (175)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3075166A (en) 1959-09-08 1963-01-22 Anderson Electric Corp Hot line clamp
US3558984A (en) 1967-05-23 1971-01-26 English Electric Co Ltd A.c. system fault indicator
US3676740A (en) 1971-06-01 1972-07-11 Schweitzer Mfg Co E Automatically resettable fault indicator
US3686531A (en) 1971-04-08 1972-08-22 Robert M Decker Fault locating system for electrical circuits
US3702966A (en) 1971-03-01 1972-11-14 Schweitzer Mfg Co E Current measuring and automatically resettable fault indicating means
US3708724A (en) 1972-03-31 1973-01-02 Schweitzer Mfg Co E Signalling system responsive to fault on electric power line
US3715742A (en) 1971-06-01 1973-02-06 Schweiter E Mfg Co Inc Alternating current fault indicating means
US3720872A (en) 1970-09-04 1973-03-13 Taft Electrosyst Inc Power transmission fault indicator with automatic reset means
US3725832A (en) 1971-10-12 1973-04-03 Schwertzer E Mfg Co Inc Magnetic core structure
US3755714A (en) 1971-12-20 1973-08-28 Rte Corp Self-contained interrupting apparatus for an electric power distribution system
US3768011A (en) 1970-06-09 1973-10-23 W Swain Means for measuring magnitude and direction of a direct current or permanent magnet, including clip-on direct current sensing inductor
US3777217A (en) 1972-01-10 1973-12-04 L Groce Fault indicator apparatus for fault location in an electrical power distribution system
US3814831A (en) 1970-11-27 1974-06-04 Siemens Ag Metal-enclosed high voltage line
US3816816A (en) 1969-11-03 1974-06-11 Schweitzer Mfg Co E Indicating and automatically resettable system for detection of fault current flow in a conductor
US3866197A (en) 1973-12-10 1975-02-11 E O Schweitzer Manufacturing C Means for detecting fault current in a conductor and indicating same at a remote point
US3876911A (en) 1974-02-11 1975-04-08 Schweitzer Mfg Co E Fault indicator system for high voltage connectors
US3957329A (en) 1974-11-01 1976-05-18 I-T-E Imperial Corporation Fault-current limiter for high power electrical transmission systems
US3970898A (en) 1973-11-23 1976-07-20 Zellweger Uster Ag Method of automatically isolating a faulty section of a power line belonging to an electrical energy supply network, and arrangement for carrying out this method
US4063161A (en) 1975-04-14 1977-12-13 Joslyn Mfg. And Supply Co. Buried cable fault locator with earth potential indicator and pulse generator
US4152643A (en) 1978-04-10 1979-05-01 E. O. Schweitzer Manufacturing Co., Inc. Voltage indicating test point cap
US4339792A (en) 1979-04-12 1982-07-13 Masayuki Yasumura Voltage regulator using saturable transformer
US4378525A (en) 1980-09-18 1983-03-29 Burdick Neal M Method and apparatus for measuring a DC current in a wire without making a direct connection to the wire
US4396968A (en) 1982-09-22 1983-08-02 Westinghouse Electric Corp. Fused distribution power system with clamp device for preventing arc damage to insulated distribution conductors
US4396794A (en) 1981-03-30 1983-08-02 Westinghouse Electric Corp. Arc protection clamp and arrangement for covered overhead power distribution lines
US4398057A (en) 1981-03-30 1983-08-09 Westinghouse Electric Corp. Arc protection arrangement for covered overhead power distribution lines
US4408155A (en) 1981-03-02 1983-10-04 Bridges Electric, Inc. Fault detector with improved response time for electrical transmission system
US4466071A (en) 1981-09-28 1984-08-14 Texas A&M University System High impedance fault detection apparatus and method
US4559491A (en) 1982-09-14 1985-12-17 Asea Aktiebolag Method and device for locating a fault point on a three-phase power transmission line
US4570231A (en) 1984-01-27 1986-02-11 Richard H. Bunch Fault finder
US4584523A (en) 1983-10-03 1986-04-22 Rca Corporation Measurement of the current flow in an electric power transmission line by detection of infrared radiation therefrom
US4649457A (en) 1984-02-17 1987-03-10 B. H. Tytewadd Marketing, Incorporated Surge protection device
US4654573A (en) 1985-05-17 1987-03-31 Flexible Manufacturing Systems, Inc. Power transfer device
US4709339A (en) 1983-04-13 1987-11-24 Fernandes Roosevelt A Electrical power line parameter measurement apparatus and systems, including compact, line-mounted modules
US4714893A (en) 1983-04-13 1987-12-22 Niagara Mohawk Power Corporation Apparatus for measuring the potential of a transmission line conductor
US4723220A (en) 1983-04-13 1988-02-02 Niagara Mohawk Power Corporation Apparatus for power measuring and calculating Fourier components of power line parameters
US4728887A (en) 1984-06-22 1988-03-01 Davis Murray W System for rating electric power transmission lines and equipment
US4746241A (en) 1983-04-13 1988-05-24 Niagara Mohawk Power Corporation Hinge clamp for securing a sensor module on a power transmission line
US4766549A (en) 1984-11-30 1988-08-23 Electric Power Research Institute, Inc. Single-ended transmission line fault locator
US4775839A (en) 1985-05-21 1988-10-04 Korona Messtechnik Gossau Control apparatus for the electronic detection in a.c. power transmission lines of fault locations causing power losses
US4808916A (en) 1986-11-14 1989-02-28 Niagara Mohawk Power Corporation Power supply magnetic shunt for transmission line sensor module
US4829298A (en) 1983-04-13 1989-05-09 Fernandes Roosevelt A Electrical power line monitoring systems, including harmonic value measurements and relaying communications
US4881028A (en) 1988-06-13 1989-11-14 Bright James A Fault detector
US4886980A (en) 1985-11-05 1989-12-12 Niagara Mohawk Power Corporation Transmission line sensor apparatus operable with near zero current line conditions
US4904932A (en) 1987-06-16 1990-02-27 E. O. Schweitzer Manufacturing Co., Inc. Circuit condition monitor with integrally molded test point socket and capacitive coupling
US4937769A (en) 1988-06-15 1990-06-26 Asea Brown Boveri Inc. Apparatus and method for reducing transient exponential noise in a sinusoidal signal
US5006846A (en) 1987-11-12 1991-04-09 Granville J Michael Power transmission line monitoring system
US5125738A (en) 1988-12-13 1992-06-30 Sumitomo Electric Industries, Ltd. Apparatus and system for locating a point or a faulty point in a transmission line
US5138265A (en) 1988-11-30 1992-08-11 Sumitomo Electric Industries, Ltd. Apparatus and system for locating thunderstruck point and faulty point of transmission line
US5159561A (en) 1989-04-05 1992-10-27 Mitsubishi Denki Kabushiki Kaisha Zero-phase sequence current detector
US5181026A (en) 1990-01-12 1993-01-19 Granville Group, Inc., The Power transmission line monitoring system
US5182547A (en) 1991-01-16 1993-01-26 High Voltage Maintenance Neutral wire current monitoring for three-phase four-wire power distribution system
US5202812A (en) 1988-09-21 1993-04-13 Ngk Insulators, Ltd. Apparatus for detecting faults on power transmission lines
US5206595A (en) 1991-09-10 1993-04-27 Electric Power Research Institute Advanced cable fault location
US5220311A (en) 1991-02-19 1993-06-15 Schweitzer Edmund O Jun Direction indicating fault indicators
US5428549A (en) 1993-05-28 1995-06-27 Abb Power T&D Company Transmission line fault location system
US5438256A (en) 1992-07-06 1995-08-01 Gec Alsthom T & D Sa Apparatus and method for measurement from the ground for high voltage overhead lines
US5473244A (en) 1992-09-17 1995-12-05 Libove; Joel M. Apparatus for measuring voltages and currents using non-contacting sensors
US5495169A (en) 1984-10-12 1996-02-27 Smith; Dayle Clamp-on current sensor
US5550476A (en) 1994-09-29 1996-08-27 Pacific Gas And Electric Company Fault sensor device with radio transceiver
US5565783A (en) 1994-09-29 1996-10-15 Pacific Gas And Electric Company Fault sensor device with radio transceiver
US5600248A (en) 1995-06-21 1997-02-04 Dipl.-Ing H. Horstmann Gmbh Fault distance locator for underground cable circuits
US5608328A (en) 1994-11-18 1997-03-04 Radar Engineers Method and apparatus for pin-pointing faults in electric power lines
US5650728A (en) 1995-04-03 1997-07-22 Hubbell Incorporated Fault detection system including a capacitor for generating a pulse and a processor for determining admittance versus frequency of a reflected pulse
US5656931A (en) 1995-01-20 1997-08-12 Pacific Gas And Electric Company Fault current sensor device with radio transceiver
US5682100A (en) 1995-09-06 1997-10-28 Electric Power Research Institute Inc. System and method for locating faults in electric power cables
US5696788A (en) 1995-12-26 1997-12-09 Electronics And Telecommunications Research Institute Circuit for searching fault location in a device having a plurality of application specific integrated circuits
US5712796A (en) 1994-07-14 1998-01-27 Hitachi Cable, Ltd. Method for evaluating the faulted sections and states in a power transmission line
US5729144A (en) 1996-12-02 1998-03-17 Cummins; Kenneth L. Systems and methods for determining location of a fault on an electric utility power distribution system
US5737203A (en) 1994-10-03 1998-04-07 Delco Electronics Corp. Controlled-K resonating transformer
US5764065A (en) 1996-09-20 1998-06-09 Richards; Clyde N. Remote contamination sensing device for determining contamination on insulation of power lines and substations
US5839093A (en) 1996-12-31 1998-11-17 Abb Transmit Oy System for locating faults and estimating fault resistance in distribution networks with tapped loads
US5892430A (en) 1994-04-25 1999-04-06 Foster-Miller, Inc. Self-powered powerline sensor
US5905646A (en) 1996-12-20 1999-05-18 Scanditronix Medical Ab Power modulator
US5990674A (en) 1996-07-08 1999-11-23 E.O. Schweitzer Manfacturing Co., Inc. Clamping mechanism for mounting circuit condition monitoring devices on cables of various diameters
US6002260A (en) 1997-09-23 1999-12-14 Pacific Gas & Electric Company Fault sensor suitable for use in heterogenous power distribution systems
US6016105A (en) 1998-04-30 2000-01-18 E.O. Schweitzer Manufacturing Co., Inc. Fault indicator providing contact closure and light indication on fault detection
US6043433A (en) 1998-02-20 2000-03-28 E.O. Schweitzer Manufacturing Co., Inc. Cable clamp with universal positioning
US6133724A (en) 1998-06-29 2000-10-17 E. O. Schweitzer Manufacturing Co. Remote light indication fault indicator with a timed reset circuit and a manual reset circuit
US6133723A (en) 1998-06-29 2000-10-17 E. O. Schweitzer Manufacturing Co. Fault indicator having remote light indication of fault detection
US6288632B1 (en) 1999-12-20 2001-09-11 General Electric Company Apparatus and method for power line communication (PLC)
US6292340B1 (en) 1999-04-09 2001-09-18 Electrical Materials Company Apparatus for isolation of high impedance faults
US6347027B1 (en) 1997-11-26 2002-02-12 Energyline Systems, Inc. Method and apparatus for automated reconfiguration of an electric power distribution system with enhanced protection
US6433698B1 (en) 1998-04-30 2002-08-13 E.O. Schweitzer Mfg. Co. Fault indicator providing light indication on fault detection
US6459998B1 (en) 1999-07-24 2002-10-01 Gary R. Hoffman Sensing downed power lines
US6466031B1 (en) 2000-12-29 2002-10-15 Abb Power Automation Ltd. Systems and methods for locating faults on a transmission line with multiple tapped loads
US6466030B2 (en) 2000-12-29 2002-10-15 Abb Power Automation Ltd. Systems and methods for locating faults on a transmission line with a single tapped load
US6477475B1 (en) 1998-11-12 2002-11-05 Nippon Kouatsu Electric Co., Ltd. Fault point location system
US6483435B2 (en) 2000-07-11 2002-11-19 Abb Ab Method and device of fault location for distribution networks
US6549880B1 (en) 1999-09-15 2003-04-15 Mcgraw Edison Company Reliability of electrical distribution networks
US6559651B1 (en) 2000-10-25 2003-05-06 Robert G. Crick Method for locating an open in a conductive line of an insulated conductor
US6566854B1 (en) 1998-03-13 2003-05-20 Florida International University Apparatus for measuring high frequency currents
US6577108B2 (en) 1999-11-24 2003-06-10 American Superconductor Corporation Voltage regulation of a utility power network
US6601001B1 (en) 1999-01-13 2003-07-29 Alstom Uk Ltd. Fault-detection for power lines
US6622285B1 (en) 2000-11-02 2003-09-16 Hewlett-Packard Development Company, L.P. Methods and systems for fault location
US6677743B1 (en) 1999-03-05 2004-01-13 Foster-Miller, Inc. High voltage powerline sensor with a plurality of voltage sensing devices
US6718271B1 (en) 1997-08-28 2004-04-06 Electricity Supply Board Fault detection apparatus and method of detecting faults in an electrical distribution network
US6734669B2 (en) 2002-06-11 2004-05-11 Zetec, Inc Digital demodulation of an eddy current signal
US20040156154A1 (en) 2003-02-12 2004-08-12 David Lazarovich Arc fault detection for SSPC based electrical power distribution systems
US6798211B1 (en) 1997-10-30 2004-09-28 Remote Monitoring Systems, Inc. Power line fault detector and analyzer
US6822457B2 (en) 2003-03-27 2004-11-23 Marshall B. Borchert Method of precisely determining the location of a fault on an electrical transmission system
US6822576B1 (en) 2001-10-26 2004-11-23 E.O. Schweitzer Manufacturing Company, Inc. Microprocessor controlled fault detector with circuit overload condition detection
EP1508146A2 (en) 2002-05-28 2005-02-23 Amperion, Inc. Method and device for installing and removing a current transformer on and from a current-carrying power line
US20050073200A1 (en) 2003-10-03 2005-04-07 Divan Deepakraj M. Distributed floating series active impedances for power transmission systems
US6879917B2 (en) 2002-06-14 2005-04-12 Progress Energy Carolinas Inc. Double-ended distance-to-fault location system using time-synchronized positive-or negative-sequence quantities
US6894478B1 (en) 2001-10-26 2005-05-17 E.O. Schweitzer Manufacturing Company, Inc. Fault indicator with automatically configured trip settings
US6914763B2 (en) 2002-01-15 2005-07-05 Wellspring Heritage, Llc Utility control and autonomous disconnection of distributed generation from a power distribution system
US6917888B2 (en) 2002-05-06 2005-07-12 Arkados, Inc. Method and system for power line network fault detection and quality monitoring
US6927672B2 (en) 2001-06-12 2005-08-09 Main.Net Communications Ltd. Information transmission over power lines
US6949921B1 (en) 2001-10-26 2005-09-27 E.O. Schweitzer Manufacturing Co., Llc Auto-calibration of multiple trip settings in a fault indicator
US6963197B1 (en) 2002-05-31 2005-11-08 E.O. Schweitzer Manufacturing Co., Llc. Targeted timed reset fault indicator
US6980090B2 (en) 2002-12-10 2005-12-27 Current Technologies, Llc Device and method for coupling with electrical distribution network infrastructure to provide communications
US7023691B1 (en) 2001-10-26 2006-04-04 E.O. Schweitzer Mfg. Llc Fault Indicator with permanent and temporary fault indication
US7046124B2 (en) 2003-01-21 2006-05-16 Current Technologies, Llc Power line coupling device and method of using the same
US7053601B1 (en) 2001-10-26 2006-05-30 E.O. Schweitzer Mfg. Co. Microprocessor controlled fault indicator having high visibility LED fault indication
US7072163B2 (en) 2004-10-19 2006-07-04 Mccollough Jr Norman D Method and apparatus for a remote electric power line conductor faulted circuit current monitoring system
US7076378B1 (en) 2002-11-13 2006-07-11 Current Technologies, Llc Device and method for providing power line characteristics and diagnostics
US7085659B2 (en) 2004-10-15 2006-08-01 Abb Technology Ag Dynamic energy threshold calculation for high impedance fault detection
US7158012B2 (en) 1996-11-01 2007-01-02 Foster-Miller, Inc. Non-invasive powerline communications system
US7187275B2 (en) 2004-10-21 2007-03-06 Mccollough Jr Norman D Method and apparatus for a remote electric power line conductor faulted circuit current, conductor temperature, conductor potential and conductor strain monitoring and alarm system
US7203622B2 (en) 2002-12-23 2007-04-10 Abb Research Ltd. Value-based transmission asset maintenance management of electric power networks
US7272516B2 (en) 2002-12-23 2007-09-18 Abb Research Failure rate adjustment for electric power network reliability analysis
US7295133B1 (en) 2004-12-30 2007-11-13 Hendrix Wire & Cable, Inc. Electrical circuit monitoring device
US20080077336A1 (en) 2006-09-25 2008-03-27 Roosevelt Fernandes Power line universal monitor
EP1938159A1 (en) 2005-09-16 2008-07-02 Université de Liège Device, system and method for real-time monitoring of overhead power lines
US7400150B2 (en) 2004-08-05 2008-07-15 Cannon Technologies, Inc. Remote fault monitoring in power lines
US7424400B2 (en) 2004-06-04 2008-09-09 Fmc Tech Limited Method of monitoring line faults in a medium voltage network
US7450000B2 (en) 2004-10-26 2008-11-11 Current Technologies, Llc Power line communications device and method
US7449991B2 (en) 2002-12-10 2008-11-11 Current Technologies, Llc Power line communications device and method
US20090058582A1 (en) 2007-09-04 2009-03-05 Webb Thomas A Systems and methods for extracting net-positive work from magnetic forces
US7508638B2 (en) 2006-02-28 2009-03-24 Siemens Energy & Automation, Inc. Devices, systems, and methods for providing electrical power
US7518529B2 (en) 2003-01-31 2009-04-14 Fmc Tech Limited Monitoring device for a medium voltage overhead line
US7532012B2 (en) 2006-07-07 2009-05-12 Ambient Corporation Detection and monitoring of partial discharge of a power line
US7557563B2 (en) 2005-01-19 2009-07-07 Power Measurement Ltd. Current sensor assembly
US20090192777A1 (en) * 2006-02-07 2009-07-30 Coupling Wave Solutions Cws Method for Estimating a Noise Generated in an Electronic System and Related Method for Testing Noise Immunity
US7626794B2 (en) 2005-10-18 2009-12-01 Schweitzer Engineering Laboratories, Inc. Systems, methods, and apparatus for indicating faults within a power circuit utilizing dynamically modified inrush restraint
US7633262B2 (en) 2005-03-11 2009-12-15 Lindsey Manufacturing Company Power supply for underground and pad mounted power distribution systems
US20090309754A1 (en) 2008-06-16 2009-12-17 Jimmy Bou Wireless current transformer
US7672812B2 (en) 2006-11-01 2010-03-02 Abb Research Ltd. Cable fault detection
US7683798B2 (en) 2006-07-07 2010-03-23 Ssi Power, Llc Current monitoring device for high voltage electric power lines
US20100085036A1 (en) 2007-11-02 2010-04-08 Cooper Technologies Company Overhead Communicating Device
US7701356B2 (en) 2006-03-16 2010-04-20 Power Monitors, Inc. Underground monitoring system and method
US7714592B2 (en) 2007-11-07 2010-05-11 Current Technologies, Llc System and method for determining the impedance of a medium voltage power line
US7720619B2 (en) 2006-08-04 2010-05-18 Schweitzer Engineering Laboratories, Inc. Systems and methods for detecting high-impedance faults in a multi-grounded power distribution system
US7725295B2 (en) 2006-11-01 2010-05-25 Abb Research Ltd. Cable fault detection
US7742393B2 (en) 2003-07-24 2010-06-22 Hunt Technologies, Inc. Locating endpoints in a power line communication system
US7764943B2 (en) 2006-03-27 2010-07-27 Current Technologies, Llc Overhead and underground power line communication system and method using a bypass
US7795994B2 (en) 2007-06-26 2010-09-14 Current Technologies, Llc Power line coupling device and method
US7795877B2 (en) 2006-11-02 2010-09-14 Current Technologies, Llc Power line communication and power distribution parameter measurement system and method
US7804280B2 (en) 2006-11-02 2010-09-28 Current Technologies, Llc Method and system for providing power factor correction in a power distribution system
US20110032739A1 (en) 2007-08-31 2011-02-10 Abb Technology Ag Method and device to compensate for an asymmetrical dc bias current in a power transformer connected to a high voltage converter
US7930141B2 (en) 2007-11-02 2011-04-19 Cooper Technologies Company Communicating faulted circuit indicator apparatus and method of use thereof
EP2340592A1 (en) 2008-10-08 2011-07-06 Cooper Technologies Company Overhead communicating device
US20110251732A1 (en) * 2010-04-10 2011-10-13 Schweitzer Iii Edmund O Systems and method for obtaining a load model and related parameters based on load dynamics
US20120039062A1 (en) 2010-08-10 2012-02-16 Mcbee Bruce W Apparatus for Mounting an Overhead Monitoring Device
US20120236611A1 (en) 2011-03-16 2012-09-20 Marmon Utility Llc Power line current fed power supplies producing stable load currents and related methods
US8421444B2 (en) 2009-12-31 2013-04-16 Schneider Electric USA, Inc. Compact, two stage, zero flux electronically compensated current or voltage transducer employing dual magnetic cores having substantially dissimilar magnetic characteristics
US20130162136A1 (en) 2011-10-18 2013-06-27 David A. Baldwin Arc devices and moving arc couples
US8497781B2 (en) 2004-10-22 2013-07-30 Underground Systems, Inc. Power supply and communications controller
US20140062221A1 (en) 2011-05-30 2014-03-06 Konstantinos Papastergiou System For Distributing Electric Power To An Electrical Grid
US20140145858A1 (en) 2010-09-22 2014-05-29 Gary Miller Transmission line measuring device and method for connectivity and monitoring
US20140174170A1 (en) 2012-12-21 2014-06-26 Murray W. Davis Portable self powered line mounted conductor ice thickness measuring system for overhead electric power lines
US20140192458A1 (en) 2013-01-04 2014-07-10 General Electric Company Power distribution systems and methods of operating a power distribution system including arc flash detection
US8786292B2 (en) 2010-12-06 2014-07-22 Sentient Energy, Inc. Power conductor monitoring device and method of calibration
US20140226366A1 (en) 2011-12-05 2014-08-14 Mitsubishi Electric Corporation Signal transmission circuit
US20140260598A1 (en) 2013-03-14 2014-09-18 Hubbell Incorporated Apparatuses, Systems and Methods for Determining Effective Wind Speed
US20150198667A1 (en) 2014-01-16 2015-07-16 Vanguard Instruments Company, Inc. Dual ground breaker testing system
US9182429B2 (en) 2012-01-04 2015-11-10 Sentient Energy, Inc. Distribution line clamp force using DC bias on coil
US9229036B2 (en) 2012-01-03 2016-01-05 Sentient Energy, Inc. Energy harvest split core design elements for ease of installation, high performance, and long term reliability
US20160337048A1 (en) * 2015-05-12 2016-11-17 Intel Corporation Apparatus and method for measuring power supply noise
US9581624B2 (en) 2014-08-19 2017-02-28 Southern States, Llc Corona avoidance electric power line monitoring, communication and response system
US20170199533A1 (en) 2016-01-11 2017-07-13 Electric Power Research Institute Inc. Energy harvesting device
US9954354B2 (en) 2015-01-06 2018-04-24 Sentient Energy, Inc. Methods and apparatus for mitigation of damage of power line assets from traveling electrical arcs
US20180143234A1 (en) 2016-11-18 2018-05-24 Dennis Allen Saxby Overhead power line sensor
US9984818B2 (en) 2015-12-04 2018-05-29 Sentient Energy, Inc. Current harvesting transformer with protection from high currents
US20200287410A1 (en) * 2017-12-28 2020-09-10 Beijing Etechwin Electric Co., Ltd. Microgrid control system and microgrid

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6734662B1 (en) 2001-10-26 2004-05-11 E.O. Schweitzer Manufacturing Co., Inc. Microprocessor controlled fault indicator having led fault indication circuit with battery conservation mode
US11041915B2 (en) 2018-09-18 2021-06-22 Sentient Technology Holdings, LLC Disturbance detecting current sensor
US11476674B2 (en) 2018-09-18 2022-10-18 Sentient Technology Holdings, LLC Systems and methods to maximize power from multiple power line energy harvesting devices
US20200088772A1 (en) 2018-09-18 2020-03-19 Sentient Energy, Inc. Systems and methods to measure primary voltage using capacitive coupled test point and grounded sensor circuit
US20200116772A1 (en) 2018-10-15 2020-04-16 Sentient Energy, Inc. Power line sensors with automatic phase identification
US20200174048A1 (en) 2018-11-30 2020-06-04 Sentient Energy, Inc. Sensor voltage phase angle correction

Patent Citations (180)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3075166A (en) 1959-09-08 1963-01-22 Anderson Electric Corp Hot line clamp
US3558984A (en) 1967-05-23 1971-01-26 English Electric Co Ltd A.c. system fault indicator
US3816816A (en) 1969-11-03 1974-06-11 Schweitzer Mfg Co E Indicating and automatically resettable system for detection of fault current flow in a conductor
US3768011A (en) 1970-06-09 1973-10-23 W Swain Means for measuring magnitude and direction of a direct current or permanent magnet, including clip-on direct current sensing inductor
US3720872A (en) 1970-09-04 1973-03-13 Taft Electrosyst Inc Power transmission fault indicator with automatic reset means
US3814831A (en) 1970-11-27 1974-06-04 Siemens Ag Metal-enclosed high voltage line
US3702966A (en) 1971-03-01 1972-11-14 Schweitzer Mfg Co E Current measuring and automatically resettable fault indicating means
US3686531A (en) 1971-04-08 1972-08-22 Robert M Decker Fault locating system for electrical circuits
US3715742A (en) 1971-06-01 1973-02-06 Schweiter E Mfg Co Inc Alternating current fault indicating means
US3676740A (en) 1971-06-01 1972-07-11 Schweitzer Mfg Co E Automatically resettable fault indicator
US3725832A (en) 1971-10-12 1973-04-03 Schwertzer E Mfg Co Inc Magnetic core structure
US3755714A (en) 1971-12-20 1973-08-28 Rte Corp Self-contained interrupting apparatus for an electric power distribution system
US3777217A (en) 1972-01-10 1973-12-04 L Groce Fault indicator apparatus for fault location in an electrical power distribution system
US3708724A (en) 1972-03-31 1973-01-02 Schweitzer Mfg Co E Signalling system responsive to fault on electric power line
US3970898A (en) 1973-11-23 1976-07-20 Zellweger Uster Ag Method of automatically isolating a faulty section of a power line belonging to an electrical energy supply network, and arrangement for carrying out this method
US3866197A (en) 1973-12-10 1975-02-11 E O Schweitzer Manufacturing C Means for detecting fault current in a conductor and indicating same at a remote point
US3876911A (en) 1974-02-11 1975-04-08 Schweitzer Mfg Co E Fault indicator system for high voltage connectors
US3957329A (en) 1974-11-01 1976-05-18 I-T-E Imperial Corporation Fault-current limiter for high power electrical transmission systems
US4063161A (en) 1975-04-14 1977-12-13 Joslyn Mfg. And Supply Co. Buried cable fault locator with earth potential indicator and pulse generator
US4152643A (en) 1978-04-10 1979-05-01 E. O. Schweitzer Manufacturing Co., Inc. Voltage indicating test point cap
US4339792A (en) 1979-04-12 1982-07-13 Masayuki Yasumura Voltage regulator using saturable transformer
US4378525A (en) 1980-09-18 1983-03-29 Burdick Neal M Method and apparatus for measuring a DC current in a wire without making a direct connection to the wire
US4408155A (en) 1981-03-02 1983-10-04 Bridges Electric, Inc. Fault detector with improved response time for electrical transmission system
US4396794A (en) 1981-03-30 1983-08-02 Westinghouse Electric Corp. Arc protection clamp and arrangement for covered overhead power distribution lines
US4398057A (en) 1981-03-30 1983-08-09 Westinghouse Electric Corp. Arc protection arrangement for covered overhead power distribution lines
US4466071A (en) 1981-09-28 1984-08-14 Texas A&M University System High impedance fault detection apparatus and method
US4559491A (en) 1982-09-14 1985-12-17 Asea Aktiebolag Method and device for locating a fault point on a three-phase power transmission line
US4396968A (en) 1982-09-22 1983-08-02 Westinghouse Electric Corp. Fused distribution power system with clamp device for preventing arc damage to insulated distribution conductors
US4746241A (en) 1983-04-13 1988-05-24 Niagara Mohawk Power Corporation Hinge clamp for securing a sensor module on a power transmission line
US4829298A (en) 1983-04-13 1989-05-09 Fernandes Roosevelt A Electrical power line monitoring systems, including harmonic value measurements and relaying communications
US4709339A (en) 1983-04-13 1987-11-24 Fernandes Roosevelt A Electrical power line parameter measurement apparatus and systems, including compact, line-mounted modules
US4723220A (en) 1983-04-13 1988-02-02 Niagara Mohawk Power Corporation Apparatus for power measuring and calculating Fourier components of power line parameters
US4714893A (en) 1983-04-13 1987-12-22 Niagara Mohawk Power Corporation Apparatus for measuring the potential of a transmission line conductor
US4584523A (en) 1983-10-03 1986-04-22 Rca Corporation Measurement of the current flow in an electric power transmission line by detection of infrared radiation therefrom
US4570231A (en) 1984-01-27 1986-02-11 Richard H. Bunch Fault finder
US4649457A (en) 1984-02-17 1987-03-10 B. H. Tytewadd Marketing, Incorporated Surge protection device
US4728887A (en) 1984-06-22 1988-03-01 Davis Murray W System for rating electric power transmission lines and equipment
US5495169A (en) 1984-10-12 1996-02-27 Smith; Dayle Clamp-on current sensor
US4766549A (en) 1984-11-30 1988-08-23 Electric Power Research Institute, Inc. Single-ended transmission line fault locator
US4654573A (en) 1985-05-17 1987-03-31 Flexible Manufacturing Systems, Inc. Power transfer device
US4775839A (en) 1985-05-21 1988-10-04 Korona Messtechnik Gossau Control apparatus for the electronic detection in a.c. power transmission lines of fault locations causing power losses
US4886980A (en) 1985-11-05 1989-12-12 Niagara Mohawk Power Corporation Transmission line sensor apparatus operable with near zero current line conditions
US4808916A (en) 1986-11-14 1989-02-28 Niagara Mohawk Power Corporation Power supply magnetic shunt for transmission line sensor module
US4904932A (en) 1987-06-16 1990-02-27 E. O. Schweitzer Manufacturing Co., Inc. Circuit condition monitor with integrally molded test point socket and capacitive coupling
US5006846A (en) 1987-11-12 1991-04-09 Granville J Michael Power transmission line monitoring system
US4881028A (en) 1988-06-13 1989-11-14 Bright James A Fault detector
US4937769A (en) 1988-06-15 1990-06-26 Asea Brown Boveri Inc. Apparatus and method for reducing transient exponential noise in a sinusoidal signal
US5202812A (en) 1988-09-21 1993-04-13 Ngk Insulators, Ltd. Apparatus for detecting faults on power transmission lines
US5138265A (en) 1988-11-30 1992-08-11 Sumitomo Electric Industries, Ltd. Apparatus and system for locating thunderstruck point and faulty point of transmission line
US5125738A (en) 1988-12-13 1992-06-30 Sumitomo Electric Industries, Ltd. Apparatus and system for locating a point or a faulty point in a transmission line
US5159561A (en) 1989-04-05 1992-10-27 Mitsubishi Denki Kabushiki Kaisha Zero-phase sequence current detector
US5181026A (en) 1990-01-12 1993-01-19 Granville Group, Inc., The Power transmission line monitoring system
US5182547A (en) 1991-01-16 1993-01-26 High Voltage Maintenance Neutral wire current monitoring for three-phase four-wire power distribution system
US5220311A (en) 1991-02-19 1993-06-15 Schweitzer Edmund O Jun Direction indicating fault indicators
US5206595A (en) 1991-09-10 1993-04-27 Electric Power Research Institute Advanced cable fault location
US5438256A (en) 1992-07-06 1995-08-01 Gec Alsthom T & D Sa Apparatus and method for measurement from the ground for high voltage overhead lines
US5473244A (en) 1992-09-17 1995-12-05 Libove; Joel M. Apparatus for measuring voltages and currents using non-contacting sensors
US5428549A (en) 1993-05-28 1995-06-27 Abb Power T&D Company Transmission line fault location system
US5892430A (en) 1994-04-25 1999-04-06 Foster-Miller, Inc. Self-powered powerline sensor
US5712796A (en) 1994-07-14 1998-01-27 Hitachi Cable, Ltd. Method for evaluating the faulted sections and states in a power transmission line
US5550476A (en) 1994-09-29 1996-08-27 Pacific Gas And Electric Company Fault sensor device with radio transceiver
US5565783A (en) 1994-09-29 1996-10-15 Pacific Gas And Electric Company Fault sensor device with radio transceiver
US5737203A (en) 1994-10-03 1998-04-07 Delco Electronics Corp. Controlled-K resonating transformer
US5608328A (en) 1994-11-18 1997-03-04 Radar Engineers Method and apparatus for pin-pointing faults in electric power lines
US5656931A (en) 1995-01-20 1997-08-12 Pacific Gas And Electric Company Fault current sensor device with radio transceiver
US5650728A (en) 1995-04-03 1997-07-22 Hubbell Incorporated Fault detection system including a capacitor for generating a pulse and a processor for determining admittance versus frequency of a reflected pulse
US5600248A (en) 1995-06-21 1997-02-04 Dipl.-Ing H. Horstmann Gmbh Fault distance locator for underground cable circuits
US5682100A (en) 1995-09-06 1997-10-28 Electric Power Research Institute Inc. System and method for locating faults in electric power cables
US5696788A (en) 1995-12-26 1997-12-09 Electronics And Telecommunications Research Institute Circuit for searching fault location in a device having a plurality of application specific integrated circuits
US5990674A (en) 1996-07-08 1999-11-23 E.O. Schweitzer Manfacturing Co., Inc. Clamping mechanism for mounting circuit condition monitoring devices on cables of various diameters
US5764065A (en) 1996-09-20 1998-06-09 Richards; Clyde N. Remote contamination sensing device for determining contamination on insulation of power lines and substations
US7158012B2 (en) 1996-11-01 2007-01-02 Foster-Miller, Inc. Non-invasive powerline communications system
US5729144A (en) 1996-12-02 1998-03-17 Cummins; Kenneth L. Systems and methods for determining location of a fault on an electric utility power distribution system
US5905646A (en) 1996-12-20 1999-05-18 Scanditronix Medical Ab Power modulator
US5839093A (en) 1996-12-31 1998-11-17 Abb Transmit Oy System for locating faults and estimating fault resistance in distribution networks with tapped loads
US6718271B1 (en) 1997-08-28 2004-04-06 Electricity Supply Board Fault detection apparatus and method of detecting faults in an electrical distribution network
US6002260A (en) 1997-09-23 1999-12-14 Pacific Gas & Electric Company Fault sensor suitable for use in heterogenous power distribution systems
US6798211B1 (en) 1997-10-30 2004-09-28 Remote Monitoring Systems, Inc. Power line fault detector and analyzer
US6347027B1 (en) 1997-11-26 2002-02-12 Energyline Systems, Inc. Method and apparatus for automated reconfiguration of an electric power distribution system with enhanced protection
US6043433A (en) 1998-02-20 2000-03-28 E.O. Schweitzer Manufacturing Co., Inc. Cable clamp with universal positioning
US6566854B1 (en) 1998-03-13 2003-05-20 Florida International University Apparatus for measuring high frequency currents
US6433698B1 (en) 1998-04-30 2002-08-13 E.O. Schweitzer Mfg. Co. Fault indicator providing light indication on fault detection
US6016105A (en) 1998-04-30 2000-01-18 E.O. Schweitzer Manufacturing Co., Inc. Fault indicator providing contact closure and light indication on fault detection
US6133723A (en) 1998-06-29 2000-10-17 E. O. Schweitzer Manufacturing Co. Fault indicator having remote light indication of fault detection
US6133724A (en) 1998-06-29 2000-10-17 E. O. Schweitzer Manufacturing Co. Remote light indication fault indicator with a timed reset circuit and a manual reset circuit
US6477475B1 (en) 1998-11-12 2002-11-05 Nippon Kouatsu Electric Co., Ltd. Fault point location system
US6601001B1 (en) 1999-01-13 2003-07-29 Alstom Uk Ltd. Fault-detection for power lines
US6677743B1 (en) 1999-03-05 2004-01-13 Foster-Miller, Inc. High voltage powerline sensor with a plurality of voltage sensing devices
US6292340B1 (en) 1999-04-09 2001-09-18 Electrical Materials Company Apparatus for isolation of high impedance faults
US6459998B1 (en) 1999-07-24 2002-10-01 Gary R. Hoffman Sensing downed power lines
US6549880B1 (en) 1999-09-15 2003-04-15 Mcgraw Edison Company Reliability of electrical distribution networks
US6577108B2 (en) 1999-11-24 2003-06-10 American Superconductor Corporation Voltage regulation of a utility power network
US6288632B1 (en) 1999-12-20 2001-09-11 General Electric Company Apparatus and method for power line communication (PLC)
US6483435B2 (en) 2000-07-11 2002-11-19 Abb Ab Method and device of fault location for distribution networks
US6559651B1 (en) 2000-10-25 2003-05-06 Robert G. Crick Method for locating an open in a conductive line of an insulated conductor
US6622285B1 (en) 2000-11-02 2003-09-16 Hewlett-Packard Development Company, L.P. Methods and systems for fault location
US6466031B1 (en) 2000-12-29 2002-10-15 Abb Power Automation Ltd. Systems and methods for locating faults on a transmission line with multiple tapped loads
US6466030B2 (en) 2000-12-29 2002-10-15 Abb Power Automation Ltd. Systems and methods for locating faults on a transmission line with a single tapped load
US6927672B2 (en) 2001-06-12 2005-08-09 Main.Net Communications Ltd. Information transmission over power lines
US7106048B1 (en) 2001-10-26 2006-09-12 Schweitzer Engineering Laboratories, Inc. Fault indicator with auto-configuration for overhead or underground application
US7053601B1 (en) 2001-10-26 2006-05-30 E.O. Schweitzer Mfg. Co. Microprocessor controlled fault indicator having high visibility LED fault indication
US6822576B1 (en) 2001-10-26 2004-11-23 E.O. Schweitzer Manufacturing Company, Inc. Microprocessor controlled fault detector with circuit overload condition detection
US7023691B1 (en) 2001-10-26 2006-04-04 E.O. Schweitzer Mfg. Llc Fault Indicator with permanent and temporary fault indication
US6949921B1 (en) 2001-10-26 2005-09-27 E.O. Schweitzer Manufacturing Co., Llc Auto-calibration of multiple trip settings in a fault indicator
US6894478B1 (en) 2001-10-26 2005-05-17 E.O. Schweitzer Manufacturing Company, Inc. Fault indicator with automatically configured trip settings
US6914763B2 (en) 2002-01-15 2005-07-05 Wellspring Heritage, Llc Utility control and autonomous disconnection of distributed generation from a power distribution system
US6917888B2 (en) 2002-05-06 2005-07-12 Arkados, Inc. Method and system for power line network fault detection and quality monitoring
EP1508146A2 (en) 2002-05-28 2005-02-23 Amperion, Inc. Method and device for installing and removing a current transformer on and from a current-carrying power line
US6963197B1 (en) 2002-05-31 2005-11-08 E.O. Schweitzer Manufacturing Co., Llc. Targeted timed reset fault indicator
US6734669B2 (en) 2002-06-11 2004-05-11 Zetec, Inc Digital demodulation of an eddy current signal
US6879917B2 (en) 2002-06-14 2005-04-12 Progress Energy Carolinas Inc. Double-ended distance-to-fault location system using time-synchronized positive-or negative-sequence quantities
US7076378B1 (en) 2002-11-13 2006-07-11 Current Technologies, Llc Device and method for providing power line characteristics and diagnostics
US7449991B2 (en) 2002-12-10 2008-11-11 Current Technologies, Llc Power line communications device and method
US6980090B2 (en) 2002-12-10 2005-12-27 Current Technologies, Llc Device and method for coupling with electrical distribution network infrastructure to provide communications
US7272516B2 (en) 2002-12-23 2007-09-18 Abb Research Failure rate adjustment for electric power network reliability analysis
US7203622B2 (en) 2002-12-23 2007-04-10 Abb Research Ltd. Value-based transmission asset maintenance management of electric power networks
US7046124B2 (en) 2003-01-21 2006-05-16 Current Technologies, Llc Power line coupling device and method of using the same
US7518529B2 (en) 2003-01-31 2009-04-14 Fmc Tech Limited Monitoring device for a medium voltage overhead line
US20040156154A1 (en) 2003-02-12 2004-08-12 David Lazarovich Arc fault detection for SSPC based electrical power distribution systems
US6822457B2 (en) 2003-03-27 2004-11-23 Marshall B. Borchert Method of precisely determining the location of a fault on an electrical transmission system
US7742393B2 (en) 2003-07-24 2010-06-22 Hunt Technologies, Inc. Locating endpoints in a power line communication system
US20050073200A1 (en) 2003-10-03 2005-04-07 Divan Deepakraj M. Distributed floating series active impedances for power transmission systems
US7424400B2 (en) 2004-06-04 2008-09-09 Fmc Tech Limited Method of monitoring line faults in a medium voltage network
US7400150B2 (en) 2004-08-05 2008-07-15 Cannon Technologies, Inc. Remote fault monitoring in power lines
US7085659B2 (en) 2004-10-15 2006-08-01 Abb Technology Ag Dynamic energy threshold calculation for high impedance fault detection
US7072163B2 (en) 2004-10-19 2006-07-04 Mccollough Jr Norman D Method and apparatus for a remote electric power line conductor faulted circuit current monitoring system
US7187275B2 (en) 2004-10-21 2007-03-06 Mccollough Jr Norman D Method and apparatus for a remote electric power line conductor faulted circuit current, conductor temperature, conductor potential and conductor strain monitoring and alarm system
US8497781B2 (en) 2004-10-22 2013-07-30 Underground Systems, Inc. Power supply and communications controller
US7450000B2 (en) 2004-10-26 2008-11-11 Current Technologies, Llc Power line communications device and method
US7295133B1 (en) 2004-12-30 2007-11-13 Hendrix Wire & Cable, Inc. Electrical circuit monitoring device
US7557563B2 (en) 2005-01-19 2009-07-07 Power Measurement Ltd. Current sensor assembly
US7633262B2 (en) 2005-03-11 2009-12-15 Lindsey Manufacturing Company Power supply for underground and pad mounted power distribution systems
EP1938159A1 (en) 2005-09-16 2008-07-02 Université de Liège Device, system and method for real-time monitoring of overhead power lines
US7626794B2 (en) 2005-10-18 2009-12-01 Schweitzer Engineering Laboratories, Inc. Systems, methods, and apparatus for indicating faults within a power circuit utilizing dynamically modified inrush restraint
US20090192777A1 (en) * 2006-02-07 2009-07-30 Coupling Wave Solutions Cws Method for Estimating a Noise Generated in an Electronic System and Related Method for Testing Noise Immunity
US7508638B2 (en) 2006-02-28 2009-03-24 Siemens Energy & Automation, Inc. Devices, systems, and methods for providing electrical power
US7701356B2 (en) 2006-03-16 2010-04-20 Power Monitors, Inc. Underground monitoring system and method
US7764943B2 (en) 2006-03-27 2010-07-27 Current Technologies, Llc Overhead and underground power line communication system and method using a bypass
US7532012B2 (en) 2006-07-07 2009-05-12 Ambient Corporation Detection and monitoring of partial discharge of a power line
US7683798B2 (en) 2006-07-07 2010-03-23 Ssi Power, Llc Current monitoring device for high voltage electric power lines
US7720619B2 (en) 2006-08-04 2010-05-18 Schweitzer Engineering Laboratories, Inc. Systems and methods for detecting high-impedance faults in a multi-grounded power distribution system
US20080077336A1 (en) 2006-09-25 2008-03-27 Roosevelt Fernandes Power line universal monitor
US7672812B2 (en) 2006-11-01 2010-03-02 Abb Research Ltd. Cable fault detection
US7725295B2 (en) 2006-11-01 2010-05-25 Abb Research Ltd. Cable fault detection
US7804280B2 (en) 2006-11-02 2010-09-28 Current Technologies, Llc Method and system for providing power factor correction in a power distribution system
US7795877B2 (en) 2006-11-02 2010-09-14 Current Technologies, Llc Power line communication and power distribution parameter measurement system and method
US7795994B2 (en) 2007-06-26 2010-09-14 Current Technologies, Llc Power line coupling device and method
US20110032739A1 (en) 2007-08-31 2011-02-10 Abb Technology Ag Method and device to compensate for an asymmetrical dc bias current in a power transformer connected to a high voltage converter
US20090058582A1 (en) 2007-09-04 2009-03-05 Webb Thomas A Systems and methods for extracting net-positive work from magnetic forces
US20100085036A1 (en) 2007-11-02 2010-04-08 Cooper Technologies Company Overhead Communicating Device
US7930141B2 (en) 2007-11-02 2011-04-19 Cooper Technologies Company Communicating faulted circuit indicator apparatus and method of use thereof
US8594956B2 (en) 2007-11-02 2013-11-26 Cooper Technologies Company Power line energy harvesting power supply
US7714592B2 (en) 2007-11-07 2010-05-11 Current Technologies, Llc System and method for determining the impedance of a medium voltage power line
US20090309754A1 (en) 2008-06-16 2009-12-17 Jimmy Bou Wireless current transformer
EP2340592A1 (en) 2008-10-08 2011-07-06 Cooper Technologies Company Overhead communicating device
EP2350764A1 (en) 2008-10-08 2011-08-03 Cooper Technologies Company Power line energy harvesting power supply
US8421444B2 (en) 2009-12-31 2013-04-16 Schneider Electric USA, Inc. Compact, two stage, zero flux electronically compensated current or voltage transducer employing dual magnetic cores having substantially dissimilar magnetic characteristics
US20110251732A1 (en) * 2010-04-10 2011-10-13 Schweitzer Iii Edmund O Systems and method for obtaining a load model and related parameters based on load dynamics
US20120039062A1 (en) 2010-08-10 2012-02-16 Mcbee Bruce W Apparatus for Mounting an Overhead Monitoring Device
US20140145858A1 (en) 2010-09-22 2014-05-29 Gary Miller Transmission line measuring device and method for connectivity and monitoring
US8786292B2 (en) 2010-12-06 2014-07-22 Sentient Energy, Inc. Power conductor monitoring device and method of calibration
US20120236611A1 (en) 2011-03-16 2012-09-20 Marmon Utility Llc Power line current fed power supplies producing stable load currents and related methods
US20140062221A1 (en) 2011-05-30 2014-03-06 Konstantinos Papastergiou System For Distributing Electric Power To An Electrical Grid
US20130162136A1 (en) 2011-10-18 2013-06-27 David A. Baldwin Arc devices and moving arc couples
US20140226366A1 (en) 2011-12-05 2014-08-14 Mitsubishi Electric Corporation Signal transmission circuit
US9229036B2 (en) 2012-01-03 2016-01-05 Sentient Energy, Inc. Energy harvest split core design elements for ease of installation, high performance, and long term reliability
US20160116505A1 (en) 2012-01-03 2016-04-28 Michael Kast Energy harvest split core design elements for ease of installation, high performance, and long term reliability
US9448257B2 (en) 2012-01-04 2016-09-20 Sentient Energy, Inc. Distribution line clamp force using DC bias on coil
US9182429B2 (en) 2012-01-04 2015-11-10 Sentient Energy, Inc. Distribution line clamp force using DC bias on coil
US20140174170A1 (en) 2012-12-21 2014-06-26 Murray W. Davis Portable self powered line mounted conductor ice thickness measuring system for overhead electric power lines
US20140192458A1 (en) 2013-01-04 2014-07-10 General Electric Company Power distribution systems and methods of operating a power distribution system including arc flash detection
US20140260598A1 (en) 2013-03-14 2014-09-18 Hubbell Incorporated Apparatuses, Systems and Methods for Determining Effective Wind Speed
US20150198667A1 (en) 2014-01-16 2015-07-16 Vanguard Instruments Company, Inc. Dual ground breaker testing system
US9581624B2 (en) 2014-08-19 2017-02-28 Southern States, Llc Corona avoidance electric power line monitoring, communication and response system
US9954354B2 (en) 2015-01-06 2018-04-24 Sentient Energy, Inc. Methods and apparatus for mitigation of damage of power line assets from traveling electrical arcs
US20160337048A1 (en) * 2015-05-12 2016-11-17 Intel Corporation Apparatus and method for measuring power supply noise
US9984818B2 (en) 2015-12-04 2018-05-29 Sentient Energy, Inc. Current harvesting transformer with protection from high currents
US20170199533A1 (en) 2016-01-11 2017-07-13 Electric Power Research Institute Inc. Energy harvesting device
US20180143234A1 (en) 2016-11-18 2018-05-24 Dennis Allen Saxby Overhead power line sensor
US20200287410A1 (en) * 2017-12-28 2020-09-10 Beijing Etechwin Electric Co., Ltd. Microgrid control system and microgrid

Non-Patent Citations (12)

* Cited by examiner, † Cited by third party
Title
Chen et al.; Development of arc-guided protection devices against lightning breakage of covered conductors on distribution lines; IEEE Trans. Power Deliv.; 25(1); pp. 196-205; Jan. 2010.
Chen Yang Technologies; Split core hail effect dc current sensor CYHOT-C2TC: 4 pages; retrieved from the internet Jan. 5, 2015 (http://www.hallsensors.de/CYHCT-C2TC.pdf) (Product Information).
Giampaolo Buticchi et al., Analysis of the frequency-based control of a master/slave micro-grid, 10 IET Renewable Power Generation 1570 (available at https://doi.org/10.1049/iet-rpg.2016.0167, last accessed May 25, 2021) (Year: 2016). *
Girish G. Talapur et al., Master-slave control based reliable micro-Grid with back-to-back voltage source converter as master DG, 2017 IECON 310 (available at https://ieeexplore.IEEE.org/abstract/document/8216056, last accessed May 25, 2021) (Year: 2017). *
Pierce et al.; U.S. Appl. No. 16/653,583 entitled "Power line sensors with automatic phase indetification," filed Oct. 15, 2019.
Reader et al.; U.S. Appl. No. 16/700,888 entitled "Sensor voltage phase angle correction," filed Dec. 2, 2019.
Rumrill; U.S. Appl. No 16/574,486 entitled "Distrubance detecting current sensor," filed Sep. 18, 2019.
Rumrill; U.S. Appl. No. 16/574,465 entitled "Systems and methods to measure primary voltage using capacitive coupled test point and grounded sensor circuit," filed Sep. 18, 2019.
Rumrill; U.S. Appl. No. 16/575,220 entitled "Systems and methods to maximize power from multiple power line energy harvesting devices," filed Sep. 18, 2019.
Saha et al.; Fault Location on Power Networks (Power Systems); Springer Verlag; London, UK; 435 pgs.; 2010 (Preface: Oct. 2009).
Shepard et al.; An overview of rogowski coil current sensing technology; 13 pages; retrieved from the internet Jan. 5, 2016 (http://www.dynamp.net/ldadocum.nsf/c2270fbdd892ac3e86256e75000ad88a/e710af6d3e0f6255862565d7004b19db/$FILE/Report.pdf).
Stringfield et el.; Fault location methods for overhead lines; in Transactions of the American Institute of Electrical Engineers; Amer. Inst. of Electrical Eng.; New York, NY; Part. III; vol. 76; pp. 518-630: Aug. 1957.

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